JP7171610B2 - Friction welding method and machine tool - Google Patents

Friction welding method and machine tool Download PDF

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JP7171610B2
JP7171610B2 JP2019556160A JP2019556160A JP7171610B2 JP 7171610 B2 JP7171610 B2 JP 7171610B2 JP 2019556160 A JP2019556160 A JP 2019556160A JP 2019556160 A JP2019556160 A JP 2019556160A JP 7171610 B2 JP7171610 B2 JP 7171610B2
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pair
materials
work
axes
joint surface
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JPWO2019102808A1 (en
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尊一 中谷
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Citizen Machinery Co Ltd
Citizen Watch Co Ltd
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Citizen Watch Co Ltd
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K20/00Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
    • B23K20/12Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding
    • B23K20/122Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding using a non-consumable tool, e.g. friction stir welding
    • B23K20/123Controlling or monitoring the welding process
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K20/00Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
    • B23K20/12Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding
    • B23K20/1205Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding using translation movement
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K20/00Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
    • B23K20/12Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23BTURNING; BORING
    • B23B11/00Automatic or semi-automatic turning-machines incorporating equipment for performing other working procedures, e.g. slotting, milling, rolling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23BTURNING; BORING
    • B23B3/00General-purpose turning-machines or devices, e.g. centre lathes with feed rod and lead screw; Sets of turning-machines
    • B23B3/30Turning-machines with two or more working-spindles, e.g. in fixed arrangement
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23BTURNING; BORING
    • B23B5/00Turning-machines or devices specially adapted for particular work; Accessories specially adapted therefor
    • B23B5/16Turning-machines or devices specially adapted for particular work; Accessories specially adapted therefor for bevelling, chamfering, or deburring the ends of bars or tubes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K20/00Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
    • B23K20/24Preliminary treatment
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23PMETAL-WORKING NOT OTHERWISE PROVIDED FOR; COMBINED OPERATIONS; UNIVERSAL MACHINE TOOLS
    • B23P13/00Making metal objects by operations essentially involving machining but not covered by a single other subclass
    • B23P13/02Making metal objects by operations essentially involving machining but not covered by a single other subclass in which only the machining operations are important
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C65/00Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor
    • B29C65/02Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure
    • B29C65/06Joining or sealing of preformed parts, e.g. welding of plastics materials; Apparatus therefor by heating, with or without pressure using friction, e.g. spin welding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K2101/00Articles made by soldering, welding or cutting
    • B23K2101/04Tubular or hollow articles
    • B23K2101/06Tubes

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Pressure Welding/Diffusion-Bonding (AREA)
  • Turning (AREA)
  • Forging (AREA)

Description

本発明は、摩擦圧接方法及び工作機械に関する。 The present invention relates to a friction welding method and a machine tool.

従来、対向する一対の主軸を備えた旋盤等の工作機械を用いて一対の材料を摩擦圧接する方法として、一対の主軸で各々把持した一対の材料を、軸方向の一方側から見て互いに逆方向に回転させつつ互いの軸がずれた状態から互いの軸が一致するまで接合面を互いに接触させて摩擦加熱するとともに、一対の材料の軸が互いに一致した後に当該一対の材料を圧接するようにした摩擦圧接方法が知られている(例えば、特許文献1参照)。 Conventionally, as a method of friction welding a pair of materials using a machine tool such as a lathe having a pair of main shafts facing each other, a pair of materials held by the pair of main shafts are placed in opposite directions when viewed from one side in the axial direction. While rotating in the direction, the joint surfaces are brought into contact with each other until the axes are aligned from the state where the axes are misaligned to each other, and the pair of materials are press-welded after the axes of the pair of materials are aligned with each other. There is known a friction welding method in which the pressure is reduced (see, for example, Patent Document 1).

特開平6-312279号公報JP-A-6-312279

上記特許文献1に記載の従来の摩擦圧接方法では、一対の材料を、軸方向の一方側から見て互いに逆方向に回転させて摩擦加熱を行うようにしているので、摩擦加熱を行った後、各々の材料の回転を停止させてから圧接を行う必要があり、各々の材料の回転を停止させるために、各主軸を停止させる工程において、各々の材料を摩擦圧接が可能な状態に維持することが容易ではない場合があった。 In the conventional friction welding method described in Patent Document 1, a pair of materials are rotated in mutually opposite directions when viewed from one side in the axial direction to perform friction heating. In order to stop the rotation of each material, it is necessary to stop the rotation of each material before performing pressure welding. Sometimes it wasn't easy.

本発明は、上記課題を鑑みて成されたものであり、その目的は、各々の材料を回転させた状態で摩擦圧接することができる摩擦圧接方法及び工作機械を提供することにある。 SUMMARY OF THE INVENTION The present invention has been made in view of the above problems, and an object thereof is to provide a friction welding method and a machine tool capable of performing friction welding while rotating each material.

本発明の摩擦圧接方法は、対向する一対の主軸で各々把持した一対の材料を、一対の前記材料の対向する端面を各々接合面とし、一対の前記材料の互いの軸がずれた状態から互いの軸が一致する方向に、前記接合面を互いに接触させて所定の位置まで移動させ摩擦加熱する加熱工程と、一対の前記材料を前記所定の位置で圧接する圧接工程と、を有する摩擦圧接方法であって、各々の前記材料を軸方向の一方側から見て同一方向に同一回転数で回転させながら前記加熱工程及び前記圧接工程を行い、前記加熱工程において一対の前記材料の軸を一致させる際に、一方の材料に対する他方の材料の移動速度を、外周縁の部分に比較して、軸心に向かって順次又は段階的に増加させることを特徴とする。 In the friction welding method of the present invention, a pair of materials gripped by a pair of opposing main shafts are respectively held by using the opposing end surfaces of the pair of materials as bonding surfaces, and the axes of the pair of materials are displaced from each other. A friction welding method comprising a heating step in which the joint surfaces are brought into contact with each other and moved to a predetermined position in the direction in which the axes of the two are aligned to perform friction heating, and a pressure welding step in which the pair of materials are pressure-welded at the predetermined position. wherein the heating step and the pressure contact step are performed while rotating each of the materials in the same direction at the same number of rotations when viewed from one side in the axial direction, and the axes of the pair of materials are aligned in the heating step. It is characterized in that the moving speed of one material with respect to the other material is increased toward the axial center in comparison with the portion of the outer peripheral edge .

本発明の摩擦圧接方法は、上記構成において、一対の前記材料の軸が互いに一致する位置で前記圧接工程を行うのが好ましい。 In the friction welding method of the present invention, in the configuration described above, it is preferable that the pressure welding step is performed at a position where the axes of the pair of materials coincide with each other.

本発明の摩擦圧接方法は、上記構成において、前記圧接工程の後、前記材料を、軸方向の一方側から見て前記加熱工程及び前記圧接工程におけるのと同一方向に同一回転数で回転させたまま切削する切削工程を行うのが好ましい。 In the friction welding method of the present invention, in the configuration described above, after the pressure welding step, the material is rotated at the same number of revolutions in the same direction as in the heating step and the pressure welding step as viewed from one side in the axial direction. It is preferable to perform a cutting step of cutting as it is.

本発明の工作機械は、対向する一対の主軸と、一対の前記主軸で各々把持した一対の材料を、一対の前記材料の対向する端面を各々接合面とし、一対の前記材料の互いの軸がずれた状態から互いの軸が一致する方向に、前記接合面を互いに接触させて所定の位置まで移動させ摩擦加熱する加熱工程と、一対の前記材料を前記所定の位置で圧接する圧接工程とを行うように、一対の前記主軸の移動及び回転を制御する制御部と、を有する工作機械であって、前記制御部が、一対の前記主軸を、軸方向の一方側から見て同一方向に同一回転数で回転させながら前記加熱工程及び前記圧接工程を行うとともに、前記加熱工程において一対の前記材料の軸を一致させる際に、一方の材料に対する他方の材料の移動速度を、外周縁の部分に比較して、軸心に向かって順次又は段階的に増加させるように制御することを特徴とする。 The machine tool of the present invention comprises a pair of main shafts facing each other, and a pair of materials gripped by the pair of main shafts. A heating step in which the joint surfaces are brought into contact with each other and moved to a predetermined position from the deviated state in a direction in which the axes are aligned with each other to perform friction heating; and a controller for controlling the movement and rotation of the pair of spindles so that the spindles are aligned in the same direction when viewed from one side in the axial direction. While performing the heating step and the pressure contacting step while rotating at the number of revolutions, when the axes of the pair of materials are aligned in the heating step, the moving speed of one material with respect to the other material is adjusted to the outer peripheral edge portion. In comparison, it is characterized in that it is controlled to increase sequentially or stepwise toward the axis .

本発明の工作機械は、上記構成において、前記制御部が、一対の前記材料の軸が互いに一致する位置で前記圧接工程を行うように制御するのが好ましい。 In the machine tool of the present invention, in the configuration described above, it is preferable that the control unit performs control so that the pressure contact process is performed at a position where the axes of the pair of materials coincide with each other.

本発明の工作機械は、上記構成において、前記制御部により移動が制御される工具を備え、前記制御部が、前記圧接工程の後、一対の前記主軸を、軸方向の一方側から見て前記加熱工程及び前記圧接工程におけるのと同一方向に同一回転数で回転させたまま前記工具を移動させて該工具により前記材料を切削する切削工程を行うのが好ましい。 In the above configuration, the machine tool of the present invention includes a tool whose movement is controlled by the control section, and the control section controls the movement of the pair of spindles as viewed from one side in the axial direction after the pressure contact step. It is preferable to carry out a cutting step in which the tool is moved while being rotated at the same number of revolutions in the same direction as in the heating step and the pressing step, and the material is cut by the tool.

本発明によれば、加熱工程及び圧接工程を各々の材料を回転させた状態で行い、各々の材料を摩擦圧接が可能な状態に容易に維持することができる摩擦圧接方法及び工作機械を提供することができる。 According to the present invention, there are provided a friction welding method and a machine tool that perform the heating step and the pressure welding step while rotating each material and easily maintain each material in a friction welding state. be able to.

本発明の一実施形態である摩擦圧接方法を実施可能な工作機械の構成を概略で示す説明図である。BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is an explanatory diagram schematically showing the configuration of a machine tool capable of implementing a friction welding method according to an embodiment of the present invention; (a)~(c)は、それぞれ加熱工程を行っている状態を示す説明図である。(a) to (c) are explanatory diagrams showing states in which a heating process is being performed. (a)~(d)は、それぞれ加熱工程における一対の接合面の状態を示す説明図である。(a) to (d) are explanatory diagrams showing states of a pair of bonding surfaces in a heating process. 圧接工程を行っている状態を示す説明図である。FIG. 5 is an explanatory diagram showing a state in which a pressure contact process is being performed; 切削工程を行っている状態を示す説明図である。It is explanatory drawing which shows the state which is performing the cutting process. 第1ワークと第2ワークの各工程における回転数を示す線図である。FIG. 4 is a diagram showing the number of revolutions in each process of the first work and the second work; 各工程における第1ワークの第2ワークに対するX軸方向の位置を示す線図である。FIG. 5 is a diagram showing the position of the first work in the X-axis direction with respect to the second work in each process; (a)、(b)は、変形例の加熱工程を行っている状態を示す説明図である。(a), (b) is explanatory drawing which shows the state which is performing the heating process of a modification. (a)~(c)は、変形例の加熱工程における一対の接合面の状態を示す説明図である。(a) to (c) are explanatory diagrams showing the state of a pair of joint surfaces in a heating process of a modified example.

図1に示す工作機械1は、基台2上に配置される一対の主軸つまり第1主軸3aと第2主軸3bとを有している。第1主軸3aは第1主軸台4aに回転自在に支持され、第2主軸3bは第2主軸台4bに回転自在に支持されている。第1主軸3aと第2主軸3bは所定の間隔を空けて互いに対向している。 A machine tool 1 shown in FIG. 1 has a pair of spindles arranged on a base 2, that is, a first spindle 3a and a second spindle 3b. The first spindle 3a is rotatably supported by a first headstock 4a, and the second spindle 3b is rotatably supported by a second headstock 4b. The first main shaft 3a and the second main shaft 3b are opposed to each other with a predetermined gap therebetween.

第1主軸3aは先端に第1チャック5aを備え、第1チャック5aにより第1ワークWを把持することができる。第2主軸3bは先端に第2チャック5bを備え、第2チャック5bにより第2ワークWを把持することができる。The first spindle 3a has a first chuck 5a at its tip, and can grip the first workpiece W1 with the first chuck 5a. The second spindle 3b has a second chuck 5b at its tip, and can grip the second workpiece W2 with the second chuck 5b.

第1主軸3aは第1駆動源6aにより回転駆動され、第2主軸3bは第2駆動源6bにより回転駆動される。第1駆動源6a及び第2駆動源6bとしては、例えば電動モータを採用することができる。第1主軸3aを第1駆動源6aで回転駆動することにより、第1主軸3aに把持された第1ワークWを回転させることができる。第2主軸3bを第2駆動源6bで回転駆動することにより、第2主軸3bに把持された第2ワークWを回転させることができる。The first main shaft 3a is rotationally driven by a first driving source 6a, and the second main shaft 3b is rotationally driven by a second driving source 6b. Electric motors, for example, can be employed as the first drive source 6a and the second drive source 6b. By rotationally driving the first main shaft 3a with the first drive source 6a, the first work W1 gripped by the first main shaft 3a can be rotated. The second work W2 gripped by the second main shaft 3b can be rotated by rotationally driving the second main shaft 3b with the second drive source 6b.

第1主軸台4aは、第1主軸3aの軸線方向(Z軸方向)に延出する第1Z軸ガイドレール9a、第1Z軸ガイドレール9aにスライド自在に装着された第1サドル10a及び第1サドル10aに支持されて第1主軸3aの軸線方向に対して直交する水平方向(X軸方向)に延出する第1X軸ガイドレール11aを介して基台2に搭載されている。第1主軸3aは、それぞれ第1サドル10aと基台2との間及び第1サドル10aと第1主軸台4aとの間に設けられるボールネジ等を介して、該ボールネジを回転駆動するモータ等により第1主軸台4aと一体的にZ軸方向及びX軸方向に移動駆動される。 The first headstock 4a includes a first Z-axis guide rail 9a extending in the axial direction (Z-axis direction) of the first spindle 3a, a first saddle 10a slidably mounted on the first Z-axis guide rail 9a, and a first Z-axis guide rail 9a. It is mounted on the base 2 via a first X-axis guide rail 11a which is supported by the saddle 10a and extends in the horizontal direction (X-axis direction) orthogonal to the axial direction of the first main shaft 3a. The first spindle 3a is driven by a motor or the like for rotationally driving the ball screws or the like provided between the first saddle 10a and the base 2 and between the first saddle 10a and the first headstock 4a. It is driven to move in the Z-axis direction and the X-axis direction integrally with the first headstock 4a.

第2主軸台4bは、第2主軸3bの軸線方向(Z軸方向)に延出する第2Z軸ガイドレール9b、第2Z軸ガイドレール9bにスライド自在に装着された第2サドル10b及び第2サドル10bに支持されて第2主軸3bの軸線方向に対して直交する水平方向(X軸方向)に延出する第2X軸ガイドレール11bを介して基台2に搭載されている。第2主軸3bは、それぞれ第2サドル10bと基台2との間及び第2サドル10bと第2主軸台4bとの間に設けられるボールネジ等を介して、該ボールネジを回転駆動するモータ等により、第2主軸台4bと一体的に、Z軸方向及びX軸方向に移動駆動される。 The second headstock 4b includes a second Z-axis guide rail 9b extending in the axial direction (Z-axis direction) of the second spindle 3b, a second saddle 10b slidably mounted on the second Z-axis guide rail 9b, and a second Z-axis guide rail 9b. It is mounted on the base 2 via a second X-axis guide rail 11b that is supported by the saddle 10b and extends in the horizontal direction (X-axis direction) orthogonal to the axial direction of the second main shaft 3b. The second spindle 3b is driven by a motor or the like that rotates the ball screws or the like provided between the second saddle 10b and the base 2 and between the second saddle 10b and the second headstock 4b. , and the second headstock 4b are integrally driven to move in the Z-axis direction and the X-axis direction.

図示する場合では、第1主軸3aと第2主軸3bの両方がZ軸方向及びX軸方向に移動駆動される構成としたが、例えば、第1主軸3aと第2主軸3bの何れか一方のみをZ軸方向及びX軸方向に移動駆動される構成とするなど、第1主軸3aと第2主軸3bとが相対的にZ軸方向及びX軸方向に移動可能な構成であればよい。 In the illustrated case, both the first main shaft 3a and the second main shaft 3b are driven to move in the Z-axis direction and the X-axis direction. are driven to move in the Z-axis direction and the X-axis direction.

工作機械1は、切削加工のための工具7を備えている。工具7は、移動手段8に装着され、移動手段8によって移動自在である。第1ワークW、第2ワークWは、第1主軸3aや第2主軸3bとともに切削加工に対応した所定の回転数(回転速度)で回転した状態で工具7の刃部7aが押し当てられることにより、工具7により切削加工される。工具7は、第1主軸3aでの第1ワークWの加工用と、第2主軸3bでの第2ワークWの加工用とを各別に設けることもできる。The machine tool 1 has a tool 7 for cutting. The tool 7 is mounted on the moving means 8 and is movable by the moving means 8 . The first work W 1 and the second work W 2 are rotated together with the first main spindle 3a and the second main spindle 3b at a predetermined number of revolutions (rotational speed) corresponding to the cutting process, and the cutting edge 7a of the tool 7 presses against them. It is cut by the tool 7 by being cut. The tools 7 may be separately provided for machining the first workpiece W1 on the first spindle 3a and for machining the second workpiece W2 on the second spindle 3b.

第1主軸3aと第2主軸3bの両方がZ軸方向及びX軸方向に移動駆動される構成とした場合では、移動手段8を設けず工具7を工具台に固定した構成とし、第1主軸3aと第2主軸3bとを工具7に対して相対移動させることで工具7の刃部7aを接合ワークWに押し当てて切削加工を行う構成とすることもできる。In the case where both the first spindle 3a and the second spindle 3b are driven to move in the Z-axis direction and the X-axis direction, the tool 7 is fixed to the tool table without providing the moving means 8, and the first spindle By moving the 3a and the second main shaft 3b relative to the tool 7, the blade portion 7a of the tool 7 can be pressed against the workpiece W3 to perform cutting.

工作機械1は制御部Cを有している。制御部Cは、例えばCPU(中央演算処理装置)やメモリ等の記憶手段を備えたマイクロコンピュータで構成することができる。制御部Cは、第1駆動源6a、第2駆動源6b、移動手段8、両主軸台4a、4bのZ軸及びX軸のスライド移動機構等に接続され、両主軸3a、3bの回転、工具7の移動、両主軸台4a、4bの移動などの作動を統合制御することができる。工作機械1は、例えばCNC旋盤等の旋盤によって構成することができる。 The machine tool 1 has a controller C. As shown in FIG. The control unit C can be composed of, for example, a microcomputer having a CPU (Central Processing Unit) and storage means such as a memory. The control unit C is connected to the first drive source 6a, the second drive source 6b, the moving means 8, the Z-axis and X-axis slide movement mechanisms of both the headstocks 4a and 4b, and the like, and controls the rotation of the two main shafts 3a and 3b. Operations such as movement of the tool 7 and movement of both headstocks 4a and 4b can be controlled in an integrated manner. The machine tool 1 can be configured by a lathe such as a CNC lathe, for example.

第1ワークW及び第2ワークWは、例えば、軸方向を向く端面すなわち第1接合面S1、第2接合面S2が、それぞれ軸方向に対して垂直な平坦面を備える金属製の丸棒等とすることができる。第1ワークWを第1主軸3aの後端から挿入される長尺の丸棒材とし、第1主軸3aにおいて切削加工されて残材として残る第1ワークWを第2ワークWとすることができる。The first work W1 and the second work W2 are, for example, metal rounds whose end surfaces facing the axial direction, that is, the first joint surface S1 and the second joint surface S2 each have a flat surface perpendicular to the axial direction. It can be a stick or the like. The first work W1 is a long round bar that is inserted from the rear end of the first main spindle 3a, and the first work W1 that remains as a residual material after being cut by the first main spindle 3a is called the second work W2. can do.

第1主軸3aに第1ワークWを把持させるとともに第2主軸3bに第2ワークWを把持させる図1に示す状態で、第1主軸3aと第2主軸3bとのZ軸及びX軸への相対移動により、図2(a)に示すように、第1ワークWと第2ワークWとを、第1接合面S1と第2接合面S2のZ軸方向位置が互いに一致するとともに、互いの軸がX軸方向にずれて第1接合面S1と第2接合面S2とが互いにX軸方向に離間した状態となるように配置する。In the state shown in FIG. 1, in which the first spindle 3a grips the first workpiece W1 and the second spindle 3b grips the second workpiece W2, the Z axis and the X axis of the first spindle 3a and the second spindle 3b are rotated. As shown in FIG. 2(a), the relative movement of the first workpiece W1 and the second workpiece W2 causes the first joint surface S1 and the second joint surface S2 to match each other in the Z-axis direction. At the same time, the first joint surface S1 and the second joint surface S2 are arranged so that their axes are shifted in the X-axis direction and the first joint surface S1 and the second joint surface S2 are separated from each other in the X-axis direction.

第1主軸3aと第2主軸3bとの作動により、第1ワークWと第2ワークWとが軸方向の一方側から見て同一方向に同一回転数で回転した状態で、図2(a)に示す状態から、第1ワークWを第2ワークWに対してX軸方向に相対移動させ、同一方向に同一回転数で回転する第1接合面S1と第2接合面S2とを互いに接触させて摩擦加熱する(加熱工程)。加熱工程は、第1ワークWと第2ワークWとを、図2(b)に示すように互いの軸がずれた状態から、図2(c)に示すように互いの軸が一致する状態に移行させるまで行われる。第1ワークWの第2ワークWに対するX軸方向への相対移動に際して、必要に応じて第1ワークWと第2ワークWとを互いに押し付けた状態で接触させることもできる。As shown in FIG . 2 ( From the state shown in a), the first work W1 is moved relative to the second work W2 in the X-axis direction, and the first joint surface S1 and the second joint surface S2 are rotated in the same direction at the same number of rotations. are brought into contact with each other and heated by friction (heating step). In the heating process, the first work W1 and the second work W2 are moved from a state in which their axes are deviated from each other as shown in FIG. This is done until you move to a state where When the first work W1 is moved relative to the second work W2 in the X-axis direction, the first work W1 and the second work W2 can be brought into contact while being pressed against each other, if necessary.

上記加熱工程においては、第1ワークWと第2ワークWは、軸方向の一方側から見て同一方向に同一回転数で回転しているので、図3(a)に示すように第1接合面S1と第2接合面S2とがX軸方向に互いに離間した状態から、図3(b)に示すように、第1接合面S1と第2接合面S2とが外周縁の部分において互いに接触し始めたときに最大の相対速度を有し、回転差による最も大きな摩擦熱を生じて大きな温度上昇を伴って加熱され、図3(d)に示すように、互いの軸が一致した状態となるまで接合が可能な接合面の温度を維持したまま連続して摩擦加熱される。In the heating process, the first workpiece W1 and the second workpiece W2 rotate in the same direction at the same number of revolutions when viewed from one side in the axial direction. From the state in which the first joint surface S1 and the second joint surface S2 are separated from each other in the X-axis direction, as shown in FIG. When they start to come into contact with each other, they have the maximum relative speed, generate the greatest frictional heat due to the rotation difference, and are heated with a large temperature rise, and as shown in FIG. Friction heating is continuously performed while maintaining the temperature of the joining surface that allows joining until the state is reached.

加熱工程においては、図3(c)に示すように、第1接合面S1の中心部分は第2接合面S2の外周縁部分に回転差を有して接触し、第2接合面S2の中心部分は第1接合面S1の外周縁部分に回転差を有して接触することになるので、第1接合面S1の中心部分及び第2接合面S2の中心部分も摩擦熱により加熱される。 In the heating step, as shown in FIG. 3(c), the center portion of the first joint surface S1 contacts the outer peripheral edge portion of the second joint surface S2 with a rotational difference, and the center of the second joint surface S2 Since the portions come into contact with the outer peripheral portion of the first joint surface S1 with a rotational difference, the central portion of the first joint surface S1 and the central portion of the second joint surface S2 are also heated by frictional heat.

図3(d)に示すように、第1主軸3aと第2主軸3bの軸が互いに一致すると、第1主軸3aと第2主軸3bとは共に回転した状態で相対的な回転数の差が0となり、第1主軸3aと第2主軸3bが互いに相対回転しない状態となって加熱工程は終了する。 As shown in FIG. 3(d), when the axes of the first main shaft 3a and the second main shaft 3b coincide with each other, the difference in the relative rotational speeds of the first and second main shafts 3a and 3b is 0, the first main shaft 3a and the second main shaft 3b do not rotate relative to each other, and the heating process ends.

第1ワークWと第2ワークWの軸が一致して加熱工程が完了すると、次に、第1ワークWと第2ワークWとを圧接する圧接工程が行われる。圧接工程は、図4に示すように、互いの軸が一致するとともに同一方向に同一回転数で回転することで互いに相対的に回転が停止した状態となった第1ワークWと第2ワークWとを互いに接近させるようにZ軸方向に相対移動させ、第1接合面S1と第2接合面S2とを所定の圧力(アプセット圧)で軸線方向(Z軸方向)に押し付けることで行われる。When the axes of the first work W1 and the second work W2 are aligned and the heating process is completed, the first work W1 and the second work W2 are pressed against each other. As shown in FIG. 4, the pressure contact process is performed by rotating the first work W1 and the second work W1 and the second work whose axes are aligned with each other and rotate in the same direction at the same number of revolutions so that the rotation relative to each other is stopped. W2 are relatively moved in the Z-axis direction so as to approach each other, and the first joint surface S1 and the second joint surface S2 are pressed in the axial direction (Z-axis direction) with a predetermined pressure (upset pressure). will be

加熱工程後の圧接工程によって、一対の材料としての第1ワークWと第2ワークWとが摩擦圧接により接合される。本工作機械1は、第1ワークWと第2ワークWとを摩擦圧接して接合ワークWとする。本実施形態において、圧接工程は、第1ワークWと第2ワークWとを互いに押圧する方向に移動させる両方の主軸3a、3bに対する移動指令に基づいて、第1主軸3aと第2主軸3bを共に互いに近接する方向に移動させて行われる。By the pressure welding process after the heating process, the first work W1 and the second work W2 as a pair of materials are joined by friction welding. This machine tool 1 friction - welds a first work W1 and a second work W2 to form a joined work W3. In the present embodiment, the pressing process is performed by moving the first main shaft 3a and the second main shaft 3b based on movement commands for both the main shafts 3a and 3b, which move the first work W1 and the second work W2 in the direction of mutually pressing the first work W1 and the second work W2. 3b are moved together toward each other.

第1主軸3aと第2主軸3bを共に近接する方向に移動させるため、例えば一方の主軸をZ軸方向に停止させた状態で他方の主軸をZ軸方向に移動させて第1ワークWと第2ワークWとを互いに押圧する場合に比較して、第1主軸3a及び第2主軸3bの位置と移動指令の位置との誤差に基づく制御部Cのエラーを容易に回避することができる。In order to move both the first main shaft 3a and the second main shaft 3b in a direction approaching each other, for example, one main shaft is stopped in the Z-axis direction and the other main shaft is moved in the Z-axis direction to move the first work W1. Compared to the case where the second workpiece W2 is pressed against each other, it is possible to easily avoid the error of the control unit C based on the error between the positions of the first main spindle 3a and the second main spindle 3b and the position of the movement command. .

本実施形態の摩擦圧接方法では、上記の通り、加熱工程において、第1接合面S1の中心部分に第2接合面S2の外周縁部分が接触し、第2接合面S2の中心部分に第1接合面S1の外周縁部分が接触することにより、第1ワークWと第2ワークWとを同軸としたまま互いに相対回転させて摩擦加熱する場合に比べて、第1接合面S1の中心部分及び第2接合面S2の中心部分は各々十分に摩擦加熱される。したがって、圧接工程において、第1接合面S1と第2接合面S2を全体的に摩擦による温度上昇が生じるようにして、摩擦圧接による接合面の面積を増加させ、第1ワークWと第2ワークWとを、より接合強度が向上した摩擦圧接をすることができる。In the friction welding method of the present embodiment, as described above, in the heating step, the outer peripheral portion of the second joint surface S2 contacts the central portion of the first joint surface S1, and the central portion of the second joint surface S2 contacts the first joint surface S2. By contacting the outer peripheral edge portion of the joint surface S1, the center of the first joint surface S1 is reduced compared to the case where the first work W1 and the second work W2 are coaxially rotated relative to each other and frictionally heated. The portion and the central portion of the second joint surface S2 are each sufficiently friction-heated. Therefore, in the pressure welding process, the temperature of the entire first joint surface S1 and the second joint surface S2 is increased by friction, thereby increasing the area of the joint surface by friction welding, and the first workpiece W1 and the second joint surface S2. The workpiece W2 can be friction - welded with improved bonding strength.

上記の通り、本実施形態の摩擦圧接方法では、第1ワークWと第2ワークWとを同一方向に同一回転数で回転させて加熱工程を行うようにしているので、第1ワークWと第2ワークWの軸が一致して加熱工程が完了すると、第1接合面S1と第2接合面S2とは相対的に停止した状態となる。したがって、図6に示すように、加熱工程が完了した後、第1ワークWと第2ワークWの回転を停止させることなく、第1ワークWと第2ワークWとを加熱工程と同一の回転方向に同一の回転数で回転させたまま上記した圧接工程を連続して行うことができる。As described above, in the friction welding method of the present embodiment, the first work W1 and the second work W2 are rotated in the same direction at the same number of revolutions to perform the heating process. When the axes of W1 and second work W2 are aligned and the heating process is completed, the first joint surface S1 and the second joint surface S2 are relatively stopped. Therefore, as shown in FIG. 6, after the heating process is completed, the first work W1 and the second work W2 are heated without stopping the rotation of the first work W1 and the second work W2. The pressure contact process can be continuously performed while rotating at the same number of revolutions in the same rotating direction.

第1ワークWを第2ワークWに対してX軸方向に相対移動させる第1主軸3a及び第2主軸3bのX軸方向への移動は、加熱工程の完了に際して、第1接合面S1と第2接合面S2の温度が摩擦圧接に必要な温度を維持するように、相対的な回転差の低下による前記温度の低下を考慮して制御される。第1主軸3a及び第2主軸3bのX軸方向への移動速度等、移動の制御によって、第1ワークWと第2ワークWの互いの軸が一致した状態となるまで、第1接合面S1と第2接合面S2の接合が可能な温度を維持したまま連続して容易に摩擦加熱することができる。The movement in the X-axis direction of the first main shaft 3a and the second main shaft 3b, which relatively moves the first work W1 in the X-axis direction with respect to the second work W2, is performed when the heating process is completed. and the second joint surface S2 are controlled so as to maintain the temperature necessary for friction welding, taking into consideration the temperature drop due to the relative rotation difference drop. By controlling the movement such as the movement speed of the first main shaft 3a and the second main shaft 3b in the X-axis direction, the first joining is performed until the axes of the first work W1 and the second work W2 are aligned with each other. Friction heating can be easily performed continuously while maintaining a temperature at which the surface S1 and the second bonding surface S2 can be bonded.

また、図7に示すように、第1ワークWの第2ワークWに対するX軸方向の位置Xを変化させて加熱工程を行い、第1ワークWと第2ワークWの軸が一致し、位置Xが0となって加熱工程が完了するようにしているので、第1ワークWと第2ワークWとを同心で接合する場合は、加熱工程が完了した後には、第1ワークWの第2ワークWに対するX軸方向の位置Xを変化させることなく、そのまま圧接工程を行うことができる。したがって、加熱工程の後、圧接工程を開始するまでの時間を短縮して、迅速に摩擦圧接を行うことができる。In addition, as shown in FIG. 7, the heating process is performed by changing the position X in the X-axis direction of the first work W1 with respect to the second work W2, so that the axes of the first work W1 and the second work W2 are aligned. The position X becomes 0 and the heating process is completed. Therefore, when joining the first work W1 and the second work W2 concentrically, after the heating process is completed, the second work W1 and the second work W2 are concentrically joined. Without changing the position X in the X-axis direction of the first work W1 with respect to the second work W2, the pressing process can be performed as it is. Therefore, after the heating process, the time until the pressure welding process is started can be shortened, and the friction welding can be performed quickly.

本実施形態の摩擦圧接方法は、圧接工程の後、材料である接合ワークWを、軸方向の一方側から見て加熱工程及び圧接工程におけるのと同一方向に同一回転数で回転させたまま切削する切削工程を連続して行う構成とすることができる。In the friction welding method of the present embodiment, after the pressure welding process, the workpiece W3 , which is the material to be welded, is rotated at the same number of revolutions in the same direction as in the heating process and the pressure welding process when viewed from one side in the axial direction. The cutting process for cutting can be performed continuously.

加熱工程及び圧接工程における第1ワークWと第2ワークWの回転数は、適度な摩擦加熱を行うことができるとともに工具7による切削加工に適した回転数とするのが好ましい。The number of revolutions of the first work W1 and the second work W2 in the heating process and the pressure contact process is preferably set to a number of revolutions suitable for cutting by the tool 7 as well as enabling appropriate frictional heating.

接合ワークWの接合部における外周面には、図4に示すように、第1ワークWと第2ワークWの摩擦熱によって軟化した部分が圧接の際に径方向外側に押し出されることによりバリBが生じる場合がある。上記切削工程においては、図5に示すように、移動手段8により工具7の刃部7aをZ軸方向に移動させることにより、バリBを取り除くための切削加工を行うことができる。As shown in FIG . 4, a portion softened by frictional heat between the first work W1 and the second work W2 is pushed radially outward on the outer peripheral surface of the joint portion of the work W3 during pressure welding. burr B may occur due to In the above cutting process, as shown in FIG. 5, by moving the blade portion 7a of the tool 7 in the Z-axis direction by the moving means 8, cutting for removing the burr B can be performed.

本実施形態の摩擦圧接方法では、切削工程における接合ワークWの軸方向の一方側から見た回転方向及び回転数は、加熱工程及び圧接工程における第1ワークW及び第2ワークWの回転方向及び回転数と同一とされているので、圧接工程が完了した後、第1ワークWと第2ワークWの回転数を調整することなく、第1ワークWと第2ワークWとを加熱工程及び圧接工程と同一の回転方向に同一の回転数で回転させたまま上記した切削工程を連続して行うことができる。すなわち、第1主軸3a及び第2主軸3bの回転を停止させることなく、図6に示すように、第1ワークW及び第2ワークWの回転方向、回転数を同一に維持したまま、加熱工程、圧接工程、切削工程の全ての工程を行うことができる。したがって、第1ワークWと第2ワークWとを摩擦圧接した後に、迅速に接合ワークWの切削加工に移行することができ、加工時間を短縮することができる。In the friction welding method of the present embodiment, the rotational direction and number of rotations of the first work W1 and the second work W2 in the heating process and the pressure welding process, as viewed from one side in the axial direction of the work W3 to be joined in the cutting process, are Since the direction of rotation and the number of rotations are the same, the first work W1 and the second work W can be rotated without adjusting the number of rotations of the first work W1 and the second work W2 after the pressure contact process is completed. 2 is rotated at the same number of revolutions in the same direction as in the heating process and the pressure contact process, the above-described cutting process can be performed continuously. That is, without stopping the rotation of the first main shaft 3a and the second main shaft 3b, as shown in FIG. All the steps of the heating step, pressure contact step, and cutting step can be performed. Therefore, after friction welding the first work W1 and the second work W2, it is possible to quickly shift to cutting of the joined work W3 , thereby shortening the processing time.

また、図7に示すように、摩擦圧接が完了した後に、第1ワークWの第2ワークWに対するX軸方向の位置Xを変化させることなく、そのまま連続して切削工程を行うことができ、さらに、圧接工程と切削工程の間で、第1チャック5aや第2チャック5bの解除が不要な場合は、この点からも加工時間を短縮することができる。なお接合ワークWのバリBを切削加工によって除去した後、接合ワークWを切削加工のために第1主軸3aで再度把持する際には第1チャック5aや第2チャック5bの解除は必要となる。Further, as shown in FIG. 7, after the friction welding is completed, the cutting process can be performed continuously without changing the position X in the X-axis direction of the first work W1 with respect to the second work W2. Moreover, if it is not necessary to release the first chuck 5a or the second chuck 5b between the pressing process and the cutting process, the processing time can be shortened from this point as well. After removing the burr B of the joint work W3 by cutting , it is necessary to release the first chuck 5a and the second chuck 5b when gripping the joint work W3 again with the first spindle 3a for cutting. becomes.

図8(a)、(b)は、加熱工程の変形例の手順を示す説明図であり、図9(a)~(c)は、変形例の加熱工程における一対の材料の軸方向の一方側から見た位置関係及び回転方向を示す説明図である。図8、図9においては、前述した部材に対応する部材に同一の符号を付してある。 FIGS. 8A and 8B are explanatory diagrams showing the procedure of a modification of the heating process, and FIGS. It is explanatory drawing which shows the positional relationship seen from the side, and a rotation direction. 8 and 9, members corresponding to the members described above are denoted by the same reference numerals.

上記実施形態では、図2(a)に示すように、第1ワークWと第2ワークWとを、第1接合面S1と第2接合面S2のZ軸方向位置が互いに一致するとともに、互いの軸がX軸方向にずれて第1接合面S1と第2接合面S2とが互いにX軸方向に離間した状態となるように配置した後、第1ワークWを第2ワークWに対してX軸方向に相対移動させて第1接合面S1と第2接合面S2とを互いに接触させて加熱工程を開始するようにしている。In the above embodiment, as shown in FIG. 2(a), the first workpiece W1 and the second workpiece W2 are arranged so that the first joint surface S1 and the second joint surface S2 are aligned with each other in the Z-axis direction. After arranging the first joint surface S1 and the second joint surface S2 so that their axes are shifted in the X-axis direction and the first joint surface S1 and the second joint surface S2 are separated from each other in the X-axis direction, the first work W1 and the second work W 2 in the X-axis direction so that the first joint surface S1 and the second joint surface S2 are brought into contact with each other to start the heating process.

これに対し、図8(a)に示すように、第1ワークWと第2ワークWとを、第1接合面S1と第2接合面S2とが外周縁側の一部においてのみ互いに対向するようにZ軸方向に間隔を空けるとともに互いの軸をX軸方向にずらして配置した後、第1ワークWと第2ワークWとを互いに接近させるようにZ軸方向に相対移動させることで、図8(b)に示すように、第1接合面S1の外周縁側部分と第2接合面S2の外周縁側部分とを互いに接触させ、加熱工程を開始する構成とすることもできる。この場合、簡単な制御で、第1接合面S1と第2接合面S2とを、所定の押付け力で確実に接触させることができる。On the other hand, as shown in FIG. 8(a), the first work W1 and the second work W2 are arranged such that the first joint surface S1 and the second joint surface S2 face each other only at a part of the outer peripheral side. After arranging the first work W1 and the second work W2 so as to approach each other, they are relatively moved in the Z-axis direction so as to approach each other. Thus, as shown in FIG. 8B, the outer peripheral edge side portion of the first bonding surface S1 and the outer peripheral edge side portion of the second bonding surface S2 are brought into contact with each other to start the heating process. In this case, it is possible to reliably bring the first joint surface S1 and the second joint surface S2 into contact with each other with a predetermined pressing force through simple control.

上記変形例においても、図9(a)に示すように、第1接合面S1と第2接合面S2とが外周縁の部分において互いに接触し始め、図9(b)に示すように、第1接合面S1の中心部分及び第2接合面S2の中心部分が摩擦熱により加熱された後、図9(c)に示すように、互いの軸が一致した状態となるまで接合が可能な接合面の温度を維持したまま連続して摩擦加熱が行われる。 Also in the above modification, as shown in FIG. 9A, the first joint surface S1 and the second joint surface S2 begin to come into contact with each other at the outer peripheral portion, and as shown in FIG. After the central portion of the first joint surface S1 and the central portion of the second joint surface S2 are heated by frictional heat, as shown in FIG. Frictional heating is performed continuously while maintaining the surface temperature.

本発明は前記実施形態に限定されるものではなく、その要旨を逸脱しない範囲で種々変更可能である。 The present invention is not limited to the above embodiments, and can be modified in various ways without departing from the scope of the invention.

例えば、本実施形態の摩擦圧接方法は、図1に示す工作機械1を用いて実施されるに限らず、対向する一対の主軸を備えたものであれば、他の工作機械等を用いて実施することもできる。また、第2ワークWを、第2主軸3bとは別に、第1主軸3aに対向して設けられる主軸で把持させて摩擦圧接することもできる。この場合、第2主軸3bとは別の第2ワークWを把持する主軸は、第2主軸3bと共に第2主軸台4bに設けることが望ましい。第2主軸3bを摩擦圧接とは別の切削加工等で使用することが可能となる。第2主軸3bにおける摩擦圧接とは別の切削加工は、第2主軸3bとは別の主軸による摩擦圧接と同時に行わせることが可能となる。For example, the friction welding method of the present embodiment is not limited to being performed using the machine tool 1 shown in FIG. You can also Alternatively, the second work W2 can be friction-welded by being gripped by a main shaft provided facing the first main shaft 3a in addition to the second main shaft 3b. In this case, it is desirable that the main spindle for gripping the second workpiece W2, which is different from the second main spindle 3b, is provided on the second headstock 4b together with the second main spindle 3b. It becomes possible to use the second main shaft 3b for cutting or the like other than friction welding. It is possible to perform the cutting work on the second main spindle 3b, which is different from the friction welding, at the same time as the friction welding by the main spindle other than the second main spindle 3b.

前記実施の形態においては、第1接合面S1と第2接合面S2とが外周縁の部分において互いに接触してから互いの軸が一致した状態とするために第1主軸3aを移動させる例で説明をしたが、第2主軸3bを移動させても良いし、両方の主軸を相対的に移動させても良い。 In the above embodiment, the first main shaft 3a is moved so that the first joint surface S1 and the second joint surface S2 come into contact with each other at the outer peripheral edge portion and then the axes thereof are aligned with each other. As described above, the second spindle 3b may be moved, or both spindles may be moved relatively.

前記実施の形態においては、第1接合面S1と第2接合面S2とが外周縁の部分において互いに接触してから互いの軸が一致した状態となるまでの移動の軸をX軸とした場合を示したが、Y軸方向に移動駆動可能な構成であれば、Y軸方向への移動による本発明の摩擦圧接方法も可能である。 In the above-described embodiment, when the axis of movement from when the first joint surface S1 and the second joint surface S2 come into contact with each other at the outer peripheral edge portion to when the mutual axes are aligned is the X axis. However, the friction welding method of the present invention by movement in the Y-axis direction is also possible as long as the structure is capable of being driven to move in the Y-axis direction.

第1接合面S1と第2接合面S2とが外周縁の部分において互いに接触してから互いの軸が一致した状態となるまでのX軸の移動速度を一定とする他、外周縁の部分に比較して、軸心に向かって順次または段階的に前記移動速度を増加して互いの軸心を一致させるような制御を行うことも可能である。加熱工程における移動速度を制御することにより接合面の温度を精密に制御することが可能となる。 The moving speed of the X-axis from when the first joint surface S1 and the second joint surface S2 come into contact with each other at the outer peripheral edge portion to when the axes of the two are aligned is constant. In comparison, it is also possible to perform control such that the moving speed is increased sequentially or stepwise toward the axial center to align the axial centers with each other. By controlling the moving speed in the heating process, it is possible to precisely control the temperature of the joint surface.

前記実施の形態においては、第1ワークW、第2ワークWとして、軸方向を向く第1接合面S1、第2接合面S2が、それぞれ軸方向に対して垂直な平坦面とされた金属製の丸棒とした場合を示したが、軸方向を向く第1接合面S1、第2接合面S2が、それぞれ軸方向に対して垂直な平坦面とされたものであれば、他の材質のものや、多角柱状等の異なる外径寸法、形状のものとすることもできる。In the above-described embodiment, the first joint surface S1 and the second joint surface S2 facing the axial direction of the first workpiece W 1 and the second workpiece W 2 are flat surfaces perpendicular to the axial direction, respectively. Although the case of using a metal round bar is shown, if the first joint surface S1 and the second joint surface S2 facing the axial direction are flat surfaces perpendicular to the axial direction, other It can also be made of different materials, and can have different outer diameter dimensions and shapes such as a polygonal prism shape.

前記実施の形態においては、摩擦圧接の後、第1ワークWと第2ワークWとを加熱工程及び圧接工程と同一の回転方向に同一の回転数で回転させたまま切削工程を連続して行うようにしているが、第1ワークWと第2ワークWの回転数を摩擦圧接に適した回転数として摩擦圧接を行った後、第1ワークWと第2ワークWの回転数を切削加工に適した回転数に変更してから切削加工を行う構成とすることもできる。この場合においても、加熱工程、圧接工程及び切削工程を、第1ワークWと第2ワークWの回転を止めずに行うことができるので、加工時間を短縮することができる。In the above-described embodiment, after the friction welding, the cutting process is continued while rotating the first work W1 and the second work W2 at the same rotation speed in the same direction as in the heating process and the pressure welding process. However, after friction welding is performed with the number of rotations of the first work W1 and the second work W2 being suitable for friction welding, the first work W1 and the second work W2 are separated. It is also possible to change the number of revolutions to a number of revolutions suitable for cutting and then carry out the cutting. Even in this case, the heating process, the pressure welding process and the cutting process can be performed without stopping the rotation of the first work W1 and the second work W2, so that the machining time can be shortened.

前記実施の形態においては、第1ワークWの軸と第2ワークWの軸が互いに一致する位置で圧接工程を行うようにしているが、第1ワークWの軸と第2ワークWの軸が互いにずれた位置で圧接工程を行うようにしてもよい。In the above embodiment, the pressure welding process is performed at a position where the axis of the first work W1 and the axis of the second work W2 coincide with each other. The pressing process may be performed at positions where the two axes are shifted from each other.

1 工作機械
2 基台
3a 第1主軸
3b 第2主軸
4a 第1主軸台
4b 第2主軸台
5a 第1チャック
5b 第2チャック
6a 第1駆動源
6b 第2駆動源
7 工具
7a 刃部
8 移動手段
9a 第1Z軸ガイドレール
9b 第2Z軸ガイドレール
10a 第1サドル
10b 第2サドル
11a 第1X軸ガイドレール
11b 第2X軸ガイドレール
第1ワーク(材料)
第2ワーク(材料)
接合ワーク(材料)
C 制御部
S1 第1接合面
S2 第2接合面
B バリ
1 machine tool 2 base 3a first spindle 3b second spindle 4a first headstock 4b second headstock 5a first chuck 5b second chuck 6a first drive source 6b second drive source 7 tool 7a blade 8 moving means 9a First Z-axis guide rail 9b Second Z-axis guide rail 10a First saddle 10b Second saddle 11a First X-axis guide rail 11b Second X-axis guide rail W 1 First workpiece (material)
W 2 second work (material)
W 3 joint work (material)
C control unit S1 first joint surface S2 second joint surface B burr

Claims (6)

対向する一対の主軸で各々把持した一対の材料を、一対の前記材料の対向する端面を各々接合面とし、一対の前記材料の互いの軸がずれた状態から互いの軸が一致する方向に、前記接合面を互いに接触させて所定の位置まで移動させ摩擦加熱する加熱工程と、
一対の前記材料を前記所定の位置で圧接する圧接工程と、を有する摩擦圧接方法であって、
各々の前記材料を軸方向の一方側から見て同一方向に同一回転数で回転させながら前記加熱工程及び前記圧接工程を行い、
前記加熱工程において一対の前記材料の軸を一致させる際に、一方の材料に対する他方の材料の移動速度を、外周縁の部分に比較して、軸心に向かって順次又は段階的に増加させることを特徴とする摩擦圧接方法。
A pair of materials gripped by a pair of opposing main shafts, with the opposing end faces of the pair of materials as joint surfaces, in a direction in which the axes of the pair of materials are aligned from a state in which the axes of the pair of materials are displaced, A heating step in which the joint surfaces are brought into contact with each other, moved to a predetermined position, and frictionally heated;
A friction welding method comprising a pressure welding step of pressure-welding the pair of materials at the predetermined position,
performing the heating step and the pressure contact step while rotating each of the materials in the same direction at the same number of rotations as viewed from one side in the axial direction ;
When aligning the axes of the pair of materials in the heating step, the movement speed of one material relative to the other material is increased sequentially or stepwise toward the axis compared to the portion of the outer periphery. A friction welding method characterized by:
一対の前記材料の軸が互いに一致する位置で前記圧接工程を行う、請求項1に記載の摩擦圧接方法。 2. The friction welding method according to claim 1, wherein the pressure welding step is performed at a position where the axes of the pair of materials coincide with each other. 前記圧接工程の後、前記材料を、軸方向の一方側から見て前記加熱工程及び前記圧接工程におけるのと同一方向に同一回転数で回転させたまま切削する切削工程を行う、請求項1又は2に記載の摩擦圧接方法。 2. After the pressing step, a cutting step is performed in which the material is cut while being rotated at the same number of revolutions in the same direction as in the heating step and the pressing step as viewed from one side in the axial direction. 2. The friction welding method according to 2. 対向する一対の主軸と、
一対の前記主軸で各々把持した一対の材料を、一対の前記材料の対向する端面を各々接合面とし、一対の前記材料の互いの軸がずれた状態から互いの軸が一致する方向に、前記接合面を互いに接触させて所定の位置まで移動させ摩擦加熱する加熱工程と、一対の前記材料を前記所定の位置で圧接する圧接工程とを行うように、一対の前記主軸の移動及び回転を制御する制御部と、を有する工作機械であって、
前記制御部が、一対の前記主軸を、軸方向の一方側から見て同一方向に同一回転数で回転させながら前記加熱工程及び前記圧接工程を行うとともに、前記加熱工程において一対の前記材料の軸を一致させる際に、一方の材料に対する他方の材料の移動速度を、外周縁の部分に比較して、軸心に向かって順次又は段階的に増加させるように制御することを特徴とする工作機械。
a pair of opposing main shafts;
A pair of materials gripped by the pair of main shafts are moved from a state in which the axes of the pair of materials are aligned to the direction in which the axes of the pair of materials are aligned, with the opposing end surfaces of the pair of materials being used as joint surfaces. The movement and rotation of the pair of main shafts are controlled so as to perform a heating step in which the joint surfaces are brought into contact with each other and moved to a predetermined position for frictional heating, and a pressure contact step in which the pair of materials are pressed against each other at the predetermined position. A machine tool having a control unit that
The control unit performs the heating step and the press-contacting step while rotating the pair of main shafts in the same direction at the same number of rotations when viewed from one side in the axial direction. A machine tool characterized by controlling the movement speed of one material with respect to the other material so as to increase sequentially or stepwise toward the axis center compared to the outer peripheral edge portion when matching .
前記制御部が、一対の前記材料の軸が互いに一致する位置で前記圧接工程を行うように制御する、請求項4に記載の工作機械。 5. The machine tool according to claim 4, wherein said control unit performs control so that said pressure contact process is performed at a position where the axes of said pair of materials coincide with each other. 前記制御部により移動が制御される工具を備え、
前記制御部が、前記圧接工程の後、一対の前記主軸を、軸方向の一方側から見て前記加熱工程及び前記圧接工程におけるのと同一方向に同一回転数で回転させたまま前記工具を移動させて該工具により前記材料を切削する切削工程を行う、請求項4又は5に記載の工作機械。
A tool whose movement is controlled by the control unit,
After the pressure contacting step, the control unit moves the tool while rotating the pair of spindles in the same direction and at the same number of revolutions as in the heating step and the pressure contacting step as viewed from one axial direction. 6. The machine tool according to claim 4, wherein a cutting step is performed in which the material is cut by the tool.
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